Train movement high-level model for real-time safety justification and train scheduling based on model predictive control

Yonghua Zhou, Xun Yang, Qiancan Liu, Zhenlin Zhang
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Abstract

In the infrastructure of networked operation of high-speed trains, the justification of operation safety and the decision of scheduling strategies should be undertaken in a real-time way, which depends on the credible prediction model of train movements. This paper will incorporate the train movement high-level model into the real-time conflict detection and train scheduling based on the principle of model predictive control (MPC). The proposed model describes the restrictive, synergistic and autonomous train movements with continuous accelerations and decelerations in the discrete time and continuous space. The sufficient modeling accuracy can be achieved if the adjustable parameters are properly configured for the MPC-based control and management of train operations. Consequently, the detection of block-section occupation conflicts considering the virtual junctions and the decision of feasible scheduling strategies possess the considerable confidence level and safety guaranty. The conflict detection and the operation optimization are implemented over the rolling horizon according to the real-time feedback information. The numerical results demonstrate the utility and rationality of the proposed model for the real-time safety justification and the scheduling strategy evaluation.
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基于模型预测控制的列车运行高级模型,用于实时安全论证和列车调度
在高速列车网络化运行的基础设施中,需要实时进行运行安全论证和调度策略决策,而这取决于列车运行的可信预测模型。本文将基于模型预测控制(MPC)原理,将列车运行高层模型引入到实时冲突检测和列车调度中。该模型描述了离散时间和连续空间中具有连续加减速的约束、协同和自主的列车运动。在基于mpc的列车运行控制和管理中,合理配置可调参数可以达到足够的建模精度。因此,考虑虚拟交叉口的块段占用冲突检测和可行调度策略的决策具有较高的置信度和安全性保证。根据实时反馈信息,在滚动视界上实现冲突检测和运行优化。数值结果表明该模型在实时安全论证和调度策略评价方面具有实用性和合理性。
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